An antenna that includes a radial waveguide defining a waveguide region between opposed first and second surfaces. A radio frequency (rf) probe is disposed in the waveguide region for generating rf signals, and a plurality of radiating slot antenna elements are disposed on the first surface for emitting the rf signals from the waveguide region. A plurality of spaced apart conductive elements are disposed within the waveguide region. The antenna includes tunable elements that each include a quarter wavelength rf choke coupled through a variable capacitance and an inductive line to a respective one of the conductive elements. A plurality of dc control lines are provided, with each dc control line being connected to at least one of the tunable elements to adjust the variable capacitance thereof. A control circuit is coupled to the dc control lines and configured to selectively apply dc current values to adjust the variable capacitances of the tunable elements to control a propagation direction of the rf signals from the rf probe.
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15. A radial waveguide antenna structure comprising:
first and second circular plates defining a radial waveguide region between them;
a radio frequency (rf) probe centrally disposed in the waveguide region for generating rf signals;
a plurality of radiating slot antenna elements disposed on the first surface for emitting the rf signals from the waveguide region;
a plurality of phase shifters, each comprising an rf choke coupled through a variable capacitance and an inductive line to a conductive element disposed in the waveguide region;
the variable capacitances of the phase shifters being adjustable to vary capacitive loading applied to the conductive elements to control propagation of the rf signals within the waveguide region.
12. A method of beam steering rf signals, comprising:
providing a radial waveguide structure that includes: a waveguide region between opposed first and second surfaces; a radio frequency (rf) probe disposed in the waveguide region for generating rf signals; a plurality of radiating slot antenna elements disposed on the first surface for emitting the rf signals from the waveguide region; a plurality of spaced apart conductive elements disposed within the waveguide region; and a plurality of tunable elements, each tunable element comprising a quarter wavelength rf choke coupled through a variable capacitance and an inductive line to a respective one of the conductive elements, and
controlling, with a microcontroller, the variable capacitances of the tunable elements to vary capacitive loading applied to the conductive elements and thereby control propagation of the rf signals within the waveguide region.
1. An antenna comprising:
a radial waveguide defining a waveguide region between opposed first and second surfaces;
a radio frequency (rf) probe disposed in the waveguide region for generating rf signals;
a plurality of radiating slot antenna elements disposed on the first surface for emitting the rf signals from the waveguide region;
a plurality of spaced apart conductive elements disposed within the waveguide region;
a plurality of tunable elements, each tunable element comprising a quarter wavelength rf choke coupled through a variable capacitance and an inductive line to a respective one of the conductive elements;
a plurality of dc control lines, each dc control line being connected to at least one of the tunable elements to adjust the variable capacitance thereof; and
a control circuit coupled to the dc control lines and configured to selectively apply dc current values to adjust the variable capacitances of the tunable elements to vary capacitive loading applied to the conductive elements and thereby control propagation within the waveguide region of the rf signals from the rf probe.
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The present disclosure relates to antenna design, and, in particular embodiments, to an apparatus and method for a reconfigurable radial-line slot antenna array.
Modern wireless transmitters of radio frequency (RF) signals or antennas perform beamsteering to manipulate the direction of a main lobe of a radiation pattern and achieve enhanced spatial selectivity. Conventional beamsteering techniques rely on manipulating the phase of RF signals through a series of phase shifters and RF switches. The inclusion of phase shifters, RF switches, and other complex components increase the manufacturing cost and design complexity of agile antennas. Accordingly, less complex agile antenna designs with broadband capabilities are desired.
Existing radial waveguide antenna structures that enable beam steering often rely on configurations that are not space efficient or rely on costly components or assemblies. Example embodiments are described in which capacitively loaded phase shifting elements are provided to effect beam steering in a radial waveguide structure that includes an array of slot antenna elements.
According to a first aspect is an antenna that includes a radial waveguide defining a waveguide region between opposed first and second surfaces. A radio frequency (RF) probe is disposed in the waveguide region for generating RF signals, and a plurality of radiating slot antenna elements are disposed on the first surface for emitting the RF signals from the waveguide region. A plurality of spaced apart conductive elements are disposed within the waveguide region. The antenna includes a plurality of tunable elements, each tunable element comprising a quarter wavelength RF choke coupled through a variable capacitance and an inductive line to a respective one of the conductive elements. A plurality of DC control lines are provided, with each DC control line being connected to at least one of the tunable elements to adjust the variable capacitance thereof. A control circuit is coupled to the DC control lines and configured to selectively apply DC current values to adjust the variable capacitances of the tunable elements to control a propagation direction of the RF signals from the RF probe.
In some compatible embodiments of the aspects of the invention, the tunable elements each comprise a protective resistor coupling the RF choke to the DC control line, and the radial waveguide comprises a first circular plate defining the first surface and a second circular plate defining the second surface, the radiating slot antenna elements extending through the first circular plate. In further compatible examples, the conductive elements each extend between the first and second circular plates and the tunable elements are disposed on the second circular plate. The RF probe can be located at a center of the waveguide region and the conductive elements disposed in a radially and circumferentially periodic pattern about the RF probe. In even further compatible examples, the slot antenna elements are disposed in a ring on the first circular plate, the slot antenna elements being a greater radial distance from the probe than the conductive elements. At least some of the DC control lines may be connected to two or more of the tunable elements. In some compatible configurations, at least some of the slot antenna elements have a same shape and dimensions, but are oriented in different directions. In some examples, the slot antenna elements have a same shape and dimensions and are oriented in a common direction relative to the RF probe. At least some of the slot antenna elements may include first and second radiating slots, and in some embodiments the first and second slots intersect each other at right angles.
According to a second aspect is a method of beam steering RF signals, comprising: providing a radial waveguide structure that includes: a waveguide region between opposed first and second surfaces; a radio frequency (RF) probe disposed in the waveguide region for generating RF signals; a plurality of radiating slot antenna elements disposed on the first surface for emitting the RF signals from the waveguide region; a plurality of spaced apart conductive elements disposed within the waveguide region; and a plurality of tunable elements, each tunable element comprising a quarter wavelength RF choke coupled through a variable capacitance and an inductive line to a respective one of the conductive elements. The method includes controlling, with a microcontroller, the variable capacitances of the tunable elements to control a propagation direction of the RF signals within the waveguide region.
According to embodiment third aspect is a radial waveguide antenna structure comprising: first and second circular plates defining a radial waveguide region between them; a radio frequency (RF) probe centrally disposed in the waveguide region for generating RF signals; a plurality of radiating slot antenna elements disposed on the first surface for emitting the RF signals from the waveguide region; and a plurality of phase shifters, each comprising an RF choke coupled through a variable capacitance and an inductive line to a conductive element disposed in the waveguide region. The variable capacitances of the phase shifters are adjustable to control a propagation direction of the RF signals within the waveguide region.
For a more complete understanding of the present invention, and the advantages thereof, reference is now made to the following descriptions taken in conjunction with the accompanying drawing, in which:
Corresponding numerals and symbols in the different FIGS. generally refer to corresponding parts unless otherwise indicated. The FIGS. are drawn to clearly illustrate the relevant aspects of the embodiments and are not necessarily drawn to scale. Terms describing orientation such as top, bottom, front, back, left and right are used in this disclosure as relative terms.
Disclosed herein are example embodiments for an agile antenna that beamsteers broadband wireless transmissions, e.g., signals in the RF or microwave frequency range. As used herein, the term RF frequencies and RF signals is used to represent frequencies and signals, respectively, in the RF, microwave, and other suitable regions of the spectrum for wireless communications.
Radial-line slot antenna 200 includes a series of conductive vias or elements 214 that extend vertically between the surfaces 206, 208 of the plates 202, 204. In an example embodiment the conductive elements 214 are distributed such that they are radially and circumferentially periodic, as can be seen for example in
Referring to
Referring to
In an example embodiment the DC control lines 252 from the tunable elements 242 are conductive lines formed on the surface of substrate 232 in region 243 of bottom plate 204. In the illustrated embodiment, the DC control lines 252 lead to an interface circuit 254 that may for example include an integrated circuit chip mounted on the plate 204. Referring to
As seen in
In example embodiments the conductive elements 214 can be selectively controlled by control circuit 258 to effect beam steaming within the radial waveguide region 203 of antenna 200 relative to the RF probe 216. In particular, increasing the capacitive loading on a conductive element 214 will increase the phase or delay applied on RF signals in the near vicinity of the conductive element 214, and decreasing the capacitive loading on a conductive element 214 will decrease the phase or delay applied on the RF waves in the near vicinity of the conductive element 214. Accordingly, the capacitive values Cvar can be selectively adjusted to control the direction of RF waves within the radial waveguide region 203 of antenna 200 relative to the central RF probe 216.
In example embodiments, the antenna 200 includes an array of slot antenna elements 270 located in the top plate 202 for emitting RF waves from and/or receiving RF waves into the radial waveguide structure of antenna 200. As seen for example, in
Although a number of different configurations are possible, in one non-limiting example embodiment for antenna operation in 5 Ghz-6 GHz frequency band, the slot elements 272, 274 each have a length L1=25 mm that is approximately half of the operating wavelength and a width of W1=2 mm, the antenna 200 has a diameter of 172 mm, the plates 202, 204 are separated by a height of H=10 mm, and the conductive elements 214 each have a diameter Dw of 1.8 mm.
From the above description, it will be appreciated that the antenna 200 can be controlled to effect beam steering. In particular, according to an example method, the control circuit 258 can be configured to selectively control the capacitive loading placed on the conductive elements 214, for the purpose of directing propagation of RF signals within the radial waveguide region 203 towards selected radiating antenna elements 270,300 that are located in different radial areas of the antenna 200. In at least some examples, the described embodiment scan facilitate beam steering in two planes in a low profile package.
In at least some example embodiments the radial waveguide structure 201 used for antenna 200 may be formed using a structure other than two spaced apart PCB's. For example a multilayer technology such as Low Temperature Co-fired Ceramics (LTCC) may be used to form a suitable structure.
As disclosed above, the slot antenna elements 270/300 are circumferentially spaced in a ring near an outer edge of the top plate 202 at a radial distance that is further than the outer ring R3 of conductive elements 214. However, in some embodiments the arrangement can be extended to include additional groupings of conductive elements 214 and slot antenna elements. For example,
While several embodiments have been provided in the present disclosure, it should be understood that the disclosed systems and methods might be embodied in many other specific forms without departing from the spirit or scope of the present disclosure. The present examples are to be considered as illustrative and not restrictive, and the intention is not to be limited to the details given herein. For example, the various elements or components may be combined or integrated in another system or certain features may be omitted, or not implemented.
In addition, techniques, systems, subsystems, and methods described and illustrated in the various embodiments as discrete or separate may be combined or integrated with other systems, modules, techniques, or methods without departing from the scope of the present disclosure. Other items shown or discussed as coupled or directly coupled or communicating with each other may be indirectly coupled or communicating through some interface, device, or intermediate component whether electrically, mechanically, or otherwise. Other examples of changes, substitutions, and alterations are ascertainable by one skilled in the art and could be made without departing from the spirit and scope disclosed herein.
Klemes, Marek, Boutayeb, Halim, Hyjazie, Fayez
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